Probing the molecular mechanisms of quartz-binding peptides.
暂无分享,去创建一个
Ersin Emre Oren | Candan Tamerler | Mehmet Sarikaya | Ram Samudrala | Tiffany R Walsh | John Spencer Evans | R. Samudrala | J. Evans | T. Walsh | R. Notman | C. Tamerler | M. Sarikaya | E. Oren | Rebecca Notman | Il Won Kim | I. Kim
[1] X. Daura,et al. Peptide Folding: When Simulation Meets Experiment , 1999 .
[2] Ersin Emre Oren,et al. BIOINFORMATICS ORIGINAL PAPER doi:10.1093/bioinformatics/btm436 Sequence analysis , 2022 .
[3] T. R. Walsh,et al. Atomistic modelling of the interaction between peptides and carbon nanotubes , 2007 .
[4] Paul F. Barbara,et al. Selection of peptides with semiconductor binding specificity for directed nanocrystal assembly , 2000, Nature.
[5] C. Niemeyer. REVIEW Nanoparticles, Proteins, and Nucleic Acids: Biotechnology Meets Materials Science , 2022 .
[6] N. Seeman,et al. Emulating biology: Building nanostructures from the bottom up , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[7] F. Sicheri,et al. Ice-binding structure and mechanism of an antifreeze protein from winter flounder , 1995, Nature.
[8] J. Evans,et al. Effect of molecular conformations on the adsorption behavior of gold-binding peptides. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[9] J. Evans. ‘Apples’ and ‘oranges’: comparing the structural aspects of biomineral- and ice-interaction proteins , 2003 .
[10] T L Blundell,et al. Properties of polyproline II, a secondary structure element implicated in protein–protein interactions , 2005, Proteins.
[11] M. W. Pandit,et al. Correlation between stability of a protein and its dipeptide composition: a novel approach for predicting in vivo stability of a protein from its primary sequence. , 1990, Protein engineering.
[12] Robert Langer,et al. Advances in Biomaterials, Drug Delivery, and Bionanotechnology , 2003 .
[13] S. Stipp,et al. Biological Control on Calcite Crystallization by Polysaccharides , 2008 .
[14] K Dane Wittrup,et al. Isolating and engineering human antibodies using yeast surface display , 2006, Nature Protocols.
[15] Matthias Epple,et al. Biological and medical significance of calcium phosphates. , 2002, Angewandte Chemie.
[16] S. Weiner,et al. Design strategies in mineralized biological materials , 1997 .
[17] Y. Sugita,et al. Replica-exchange molecular dynamics method for protein folding , 1999 .
[18] G. P. Smith,et al. Filamentous fusion phage: novel expression vectors that display cloned antigens on the virion surface. , 1985, Science.
[19] K. Schulten,et al. Molecular biomimetics: nanotechnology through biology , 2003, Nature materials.
[20] Kiyotaka Shiba,et al. Specificity and biomineralization activities of Ti-binding peptide-1 (TBP-1). , 2005, Langmuir : the ACS journal of surfaces and colloids.
[21] F. Baneyx,et al. MATERIALS ASSEMBLY AND FORMATION USING ENGINEERED POLYPEPTIDES , 2004 .
[22] R. Hoess,et al. Protein design and phage display. , 2001, Chemical reviews.
[23] M. Rothe,et al. Side-reactions arising on formation of cyclodipeptides in solid-phase peptide synthesis. , 1972, Angewandte Chemie.
[24] T. Horbett,et al. Proteins at Interfaces II-Fundamentals and Applications- , 1995 .
[25] M. Sarikaya. Biomimetics: materials fabrication through biology. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[26] J. Evans,et al. Identification of an “Acidic” C-Terminal Mineral Modification Sequence from the Mollusk Shell Protein Asprich , 2006 .
[27] Rajesh R Naik,et al. Silica-precipitating peptides isolated from a combinatorial phage display peptide library. , 2002, Journal of nanoscience and nanotechnology.
[28] T. Creamer,et al. Short sequences of non-proline residues can adopt the polyproline II helical conformation. , 2004, Biochemistry.
[29] V. Uversky. Natively unfolded proteins: A point where biology waits for physics , 2002, Protein science : a publication of the Protein Society.
[30] E. Giralt,et al. CONVERGENT SOLID PHASE PEPTIDE SYNTHESIS : AN EFFICIENT APPROACH TO THE SYNTHESIS OF HIGHLY REPETITIVE PROTEIN DOMAINS , 1995 .
[31] M. Karplus,et al. CHARMM: A program for macromolecular energy, minimization, and dynamics calculations , 1983 .
[32] Alexander D. MacKerell,et al. Development of an empirical force field for silica. Application to the quartz-water interface. , 2006, The journal of physical chemistry. B.
[33] Stephen Mann,et al. Molecular recognition in biomineralization , 1988, Nature.
[34] Tiffany R Walsh,et al. Molecular dynamics studies of the interactions of water and amino acid analogues with quartz surfaces. , 2009, Langmuir : the ACS journal of surfaces and colloids.
[35] Leon Hirsch,et al. Nanoshell-Enabled Photonics-Based Imaging and Therapy of Cancer , 2004, Technology in cancer research & treatment.
[36] W. L. Jorgensen,et al. Comparison of simple potential functions for simulating liquid water , 1983 .
[37] J. Storhoff,et al. A DNA-based method for rationally assembling nanoparticles into macroscopic materials , 1996, Nature.
[38] George Georgiou,et al. Viral assembly of oriented quantum dot nanowires , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[39] P. Tompa. Intrinsically unstructured proteins. , 2002, Trends in biochemical sciences.
[40] Catherine C. Berry,et al. Functionalisation of magnetic nanoparticles for applications in biomedicine , 2003 .
[41] Berk Hess,et al. GROMACS 3.0: a package for molecular simulation and trajectory analysis , 2001 .
[42] M. Williamson,et al. The structure and function of proline-rich regions in proteins. , 1994, The Biochemical journal.